Highly Active Pd Clusters Enabled With Controllable Oxygen Vacancy for the Synergistic Decarbonylation of Furfural to Furan

Precisely regulated metal clusters are crucial for maximizing the utilization efficiency of active metal atoms. In this study, we controllably introduced oxygen vacancy (O v ) into TiO 2 via H 2 reduction to regulate the assembly of Pd atoms for furfural decarbonylation. The optimized Pd/TiO 2 catalyst with smaller Pd clusters and a suitable oxygen vacancy concentration achieved a 99.9% furfural conversion and a 92.4% furan selectivity at 200 °C and 0.3 MPa N 2 pressure, showing high catalytic performance under relatively mild conditions. Structural characterizations revealed that oxygen vacancies acted as anchoring sites for Pd species, and an appropriate vacancy concentration favored the formation of highly dispersed Pd clusters rather than larger Pd nanoparticles. Comprehensive structural and electronic analyses revealed strong interactions between Pd species and oxygen‐vacant TiO 2 , leading to the formation of Pd 2+ ‐O v ‐Ti interfacial sites. These interfacial sites promote carbonyl activation and CO elimination, while adjacent Pd 0 sites facilitated H transfer to produce furan. This work not only develops a highly efficient and tunable Pd‐based catalyst for the furfural decarbonylation, but also provides a versatile strategy for optimizing catalytic interface via oxygen vacancies.

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Publication Details

Journal
ChemSusChem
Published
2026-10-08
DOI
https://doi.org/10.1002/cssc.71093
Primary Topic
Catalysis for Biomass Conversion
Type
article
Field-Weighted Citation Impact
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article

Highly Active Pd Clusters Enabled With Controllable Oxygen Vacancy for the Synergistic Decarbonylation of Furfural to Furan

Xinqing Chen, Armin Rezayan, Longyang Wang, Chunbao Charles Xu et al.
ChemSusChem
Catalysis for Biomass Conversion
article

Highly Active Pd Clusters Enabled With Controllable Oxygen Vacancy for the Synergistic Decarbonylation of Furfural to Furan

Xinqing Chen, Armin Rezayan, Longyang Wang, Chunbao Charles Xu, Dan T-c Wu, Yongsheng Zhang, Zongwu Zhang, Dandan Han, Jianshe Wang, Ouyang Liu, Qianli Ma, Xinru Zhao, Haijun Deng
article en

Abstract

Precisely regulated metal clusters are crucial for maximizing the utilization efficiency of active metal atoms. In this study, we controllably introduced oxygen vacancy (O v ) into TiO 2 via H 2 reduction to regulate the assembly of Pd atoms for furfural decarbonylation. The optimized Pd/TiO 2 catalyst with smaller Pd clusters and a suitable oxygen vacancy concentration achieved a 99.9% furfural conversion and a 92.4% furan selectivity at 200 °C and 0.3 MPa N 2 pressure, showing high catalytic performance under relatively mild conditions. Structural characterizations revealed that oxygen vacancies acted as anchoring sites for Pd species, and an appropriate vacancy concentration favored the formation of highly dispersed Pd clusters rather than larger Pd nanoparticles. Comprehensive structural and electronic analyses revealed strong interactions between Pd species and oxygen‐vacant TiO 2 , leading to the formation of Pd 2+ ‐O v ‐Ti interfacial sites. These interfacial sites promote carbonyl activation and CO elimination, while adjacent Pd 0 sites facilitated H transfer to produce furan. This work not only develops a highly efficient and tunable Pd‐based catalyst for the furfural decarbonylation, but also provides a versatile strategy for optimizing catalytic interface via oxygen vacancies.

ChemSusChemVol. 19(19)
Hong Kong Polytechnic University (HK), Chinese Academy of Sciences (CN), Zhengzhou University (CN), Shanghai Advanced Research Institute (CN), Henan Agricultural University (CN)
Openalex Percentile: Top 24%
Catalysis for Biomass Conversion
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